• 제목/요약/키워드: Cutting Forces

검색결과 415건 처리시간 0.024초

다이아몬드 터닝 가공의 미세절삭력 측정을 위한 Tool Holder 설계 (Tool Holder Design for Measurement of Cutting Force in Diamond Turning Process)

  • 정상화;김상석;도철진;홍권희;김건희
    • 한국정밀공학회:학술대회논문집
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    • 한국정밀공학회 2000년도 추계학술대회 논문집
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    • pp.68-71
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    • 2000
  • A tool holder system has been designed to measure cutting forces in diamond turning. This system includes a 3-component piezo-electric tranducer. In this research, tool holder system is modeled by considering the element dividing, material properties, and boundary conditions using MSC/PATRAN. Mode and frequency analysis of structure is simulated by MSC/NASTRAN, for the purpose of developing the effective design. In addition, tool holder system is verified by vibration test using accelerometer. This system will aid to the development of Fast Tool Servo.

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선삭가공에서 미세변위제어에 의한 채터진동의 안정성 판별에 관한 연구 (A Study on the Evaluation of Stability for Chatter Vibration by Micro Positioning Control in Turning Process)

  • 정의식;황준
    • 한국공작기계학회논문집
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    • 제13권5호
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    • pp.49-54
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    • 2004
  • In order to evaluate the stability of chatter vibration in turning precess, the micro-positioning cutting test with artificial tool vibration by piezoelectric actuation were carried out. In experiment, the phase lags between cutting forces and chip thickness variations were measured, and the dimensionless penetration-rate coefficient($\overline{K^*}$) which is the most important parameter on the stability for chatter vibration was calculated. The results show that$\overline{K^*}$ can be applicable to the stability criterion for regenerative chatter vibration.

자기변형재료를 이용한 절삭공구용 마이크로포지쇼너의 개발

  • 박영우;원문철
    • 한국정밀공학회지
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    • 제15권3호
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    • pp.75-81
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    • 1998
  • In the machining process, variation in cutting forces results in relative displacements between the tool and the workpiece leading to tool vibration. Also there is a demand to change the depth of cut very frequently. One solution for the both cases is to develop a system which has the ability to reposition a cutting tool to a very small level, i.e., micron. This paper presents the development of a micropositioner using a magnetostrictive material. The developed micropositioner is implemented to a lathe and subjected to various tests. The results show that the micropositioner with a magnetostrictive actuator has good potential for machining application.

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공구 진동에 대한 공구 셋팅 오차의 영향 (The Effects of Tool Setting Errors on Cutting Tool Vibrations)

  • 신영재;박경택;강병수
    • 한국정밀공학회:학술대회논문집
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    • 한국정밀공학회 2005년도 춘계학술대회 논문집
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    • pp.199-202
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    • 2005
  • High speed milling process is emerging as an important fabrication process benefits include the ability to fabricate micro and meso-scale parts out of a greater range of materials and with more varied geometry. It also enables the creation of micro and meso-scale molds for injection molding. Factors affecting surface roughness have not been studied in depth for this process. A series of experiments has been conducted in order to begin to characterize the factors affecting surface roughness and determine the range of attainable surface roughness values for the high speed milling process. It has previously been shown that run-out creates a greater problem for the dimensional accuracy of parts created by high speed milling process. And run-out also has a more significant effect on the surface quality of milled parts. The surface roughness traces reveal large peak to valley variations. This run-out is generated by spindle dynamics and tool geometry. In order to investigate the relationship between tool setting errors and surface roughness end tilted mills were used to cut aluminum samples. The results indicate that tool setting errors have significant effects on surface roughness and cutting forces.

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STS 316L과 316LN 강의 고온 기계적 특성 및 가공 변질층에 관한 연구 (A Study on the Mechanical Properties and Deformed Layer of STS 316L and 316LN Stainless Steels)

  • 오선세;이원
    • 한국정밀공학회지
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    • 제21권1호
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    • pp.71-79
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    • 2004
  • The deformed layers generated in face milling works were comparatively investigated to type 316L and nitrogen(N)-added type 316LN stainless steels. In order to characterize mechanical properties between type 316L and type 316LN, high-temperature tensile tests were conducted with different temperatures: R.T to $700^{\circ}C$. The cutting forces of three components, Fx, Fy and Fz were measured using a tool dynamometer through the face milling cutting tests. The deformed layers were measured by micro-hardness tests along deformed layers. The results of mechanical properties showed that type 316LN was superior to type 316L. The deformed layers of two steels were generated in the 1501m-3001m ranges, and type 316L was higher than type 316LN. The reason for this is due to the high strength properties by nitrogen effect. It was found that deformed structures were well observed for type 316L, but were minutely observed for type 316LN in this cutting conditions.

Determination of stress state in formation zone by central slip-line field chip

  • Toropov Andrey;Ko Sung Lim
    • International Journal of Precision Engineering and Manufacturing
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    • 제6권3호
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    • pp.24-28
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    • 2005
  • Stress state of chip formation zone is one of the main problems in metal cutting mechanics. In two-dimensional case this process is usually considered as consistent shears of work material along one of several shear surfaces, separating chip from workpiece. These shear planes are assumed to be trajectories of maximum shear stress forming corresponding slip-line field. This paper suggests a new approach to the constriction of slip-line field, which implies uniform compression in chip formation zone. Based on the given model it has been found that imaginary shear line in orthogonal cutting is close to the trajectory of maximum normal stress and the problem about its determination has been considered as well. It has been shown that there is a second central slip-line field inside chip, which corresponds well to experimental data about stress distribution on tool rake face and tool-chip contact length. The suggested model would be useful in understanding mechanistic problems in machining.

초고속 스핀들에 의한 마이크로 엔드밀링의 가공특성에 관한 연구 (A Study on the Machining Characteristics for Micro Endmilling by using Ultrahigh-Speed Air Turbine Spindle)

  • 권동희;강익수;김전하;강명창;김정석
    • 한국정밀공학회:학술대회논문집
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    • 한국정밀공학회 2005년도 추계학술대회 논문집
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    • pp.598-603
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    • 2005
  • Recently, the advanced industries using micro parts are rapidly growing. The appearance of ultra-precision feed mechanism and the development of control system make it possible to process parts in sub millimeter scale by mechanical methods. Micro endmilling is one of the prominent technology that has wide spectrum of application field ranging from macro parts to micro products. So, micro stairs have been trying to cut by using high revolution air turbine spindle and micro-endmill, and studying for magnitude of cutting force. This investigation deals removal characteristics of burr generated by micro endmilling process. Also, decreasing of burr is significant problem in making smooth and precise parts in micro endmilling. In micro endmilling, the material removal rate(MRR) and cutting forces are very small. This paper presents an investigation on the machining characteristics for micro stairs by using ultrahigh-speed air turbine spindle in machining.

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엔드밀링 채터 안정성 개선을 위한 시뮬레이션 (A study on the simulation for chatter vibration stability improvement of end milling process)

  • 황준;이원국
    • 한국결정성장학회지
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    • 제26권1호
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    • pp.35-40
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    • 2016
  • 엔드밀링 공정은 3차원 형상의 다양한 부품, 제품, 금형을 가공하는데 널리 사용되고 있는 핵심 가공 프로세스이다. 가공정밀도 요구수준과 가공형상 난이도 수준이 날로 높아짐에 따라 가공정밀도 요구특성의 지속적인 향상에도 불구하고, 공작기계와 절삭공구를 이용한 절삭가공공정에서의 채터 진동은 아직도 개선의 여지가 많이 남아있다. 특히, 더욱 고속화, 고정밀화 되고 있는 가공현장에서 채터진동의 효과적인 감소대책에 대한 다양한 연구가 필요하다. 본 연구에서는 이러한 문제점을 해결하기 위해 엔드밀링공정에서 발생하기 쉬운 채터진동의 안정성을 향상시키기 위해 절삭모델에 근거한 채터진동 안정성 시뮬레이션 방법론을 연구하고, 엔드밀링 절삭조건이 채터진동에 미치는 영향을 다양한 조건하에서 예측하고자 하였다. 본 연구결과를 더욱 발전시켜 채터진동과의 상관성을 연구하고, 향후 채터진동 저감형 가공시스템 개발을 위한 근간 기술자료로 활용코자 한다.

밀링가공 시 절삭력 예측을 위한 시뮬레이션 연구 (A Study on the Simulation for Prediction of Cutting Force in Milling Process)

  • 백승엽;공정식;정성택;김성현;진다솜
    • 대한기계학회논문집A
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    • 제41권5호
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    • pp.353-359
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    • 2017
  • 금형 산업과 다양한 산업에서 사용되고 있는 CNC공작기계는 최근 첨단 제품이나 신제품 설계에서 공정의 증가로 생산 품질과 작업자의 안전성 측면이 중요해지고 있으며, 생산제품의 품질을 균일하게 하고 재현성을 향상시키기 위한 최적 절삭 조건 선정 연구가 진행되어 왔다. 본 연구에서는 공구의 기하학적 모델링을 진행하고 생산 제품의 재현성 향상을 위한 조건 선정 선행 연구와 기존의 공구 인서트를 바탕으로 Solidworks 설계 프로그램을 이용하여 공구 인서트를 모델링하였다. 모델링 데이터를 바탕으로 AdvantEdge를 사용하여 절삭 공정에서 절삭력, 공구 응력, 그리고 온도의 변화에 대한 해석을 진행하였다.

금형의 절삭가공에서 이론 모형 기반 표면거칠기 예측 결과의 실험적 모형 전환을 위한 인공신경망 구축에 대한 연구 (A Study on the Construction of an Artificial Neural Network for the Experimental Model Transition of Surface Roughness Prediction Results based on Theoretical Models in Mold Machining)

  • 김지우;이동원;김종선;김종수
    • Design & Manufacturing
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    • 제17권4호
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    • pp.1-7
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    • 2023
  • In the fabrication of curved multi-display glass for automotive use, the surface roughness of the mold is a critical quality factor. However, the difficulty in detecting micro-cutting signals in a micro-machining environment and the absence of a standardized model for predicting micro-cutting forces make it challenging to intuitively infer the correlation between cutting variables and actual surface roughness under machining conditions. Consequently, current practices heavily rely on machining condition optimization through the utilization of cutting models and experimental research for force prediction. To overcome these limitations, this study employs a surface roughness prediction formula instead of a cutting force prediction model and converts the surface roughness prediction formula into experimental data. Additionally, to account for changes in surface roughness during machining runtime, the theory of position variables has been introduced. By leveraging artificial neural network technology, the accuracy of the surface roughness prediction formula model has improved by 98%. Through the application of artificial neural network technology, the surface roughness prediction formula model, with enhanced accuracy, is anticipated to reliably perform the derivation of optimal machining conditions and the prediction of surface roughness in various machining environments at the analytical stage.